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This white paper presents an AI-Based Cross-Sell Opportunity Predictor framework designed for financial instituions to enhance customer engagement and product recommendation strategies. the framework leverages customer transaction behavior, demographic insights, product ownership patterns, and predictive analytics to identify personalized cross-sell opportunities in banking enviornments. The prosposed model integrates machine learning techniques with enterprise banking systems to generate intelligent product recommendations while considering customer eligbility, finaicial behavior, and inteaction history. The framework aims to improve customer experience, increase conversion efficiency, and support data-driven decision-making for banking relationship management teams. The paper also discusses system architecture, predictive scoring mechanisms, integration approaches for legacy and modern banking platforms, governance considerations, and implementaion challenges within regulated financial enviornments. The proposed solution is intended to support scalabale and explanainbale AI adoption in customer-centric banking ecosystems.
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Sravani Gilakamsetti
Oldham Council
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Sravani Gilakamsetti (Sat,) studied this question.
www.synapsesocial.com/papers/6a0aad5c5ba8ef6d83b70cea — DOI: https://doi.org/10.5281/zenodo.20245459